Cosmic-ray ionisation in circumstellar discs

被引:0
|
作者
机构
[1] Padovani, Marco
[2] Ivlev, Alexei V.
[3] Galli, Daniele
[4] Caselli, Paola
来源
Padovani, Marco (padovani@arcetri.astro.it) | 1600年 / EDP Sciences卷 / 614期
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Context. Galactic cosmic rays (CRs) are a ubiquitous source of ionisation of the interstellar gas, competing with UV and X-ray photons as well as natural radioactivity in determining the fractional abundance of electrons, ions, and charged dust grains in molecular clouds and circumstellar discs. Aims. We model the propagation of various components of Galactic CRs versus the column density of the gas. Our study is focussed on the propagation at high densities, above a few g cm-2, especially relevant for the inner regions of collapsing clouds and circumstellar discs. Methods. The propagation of primary and secondary CR particles (protons and heavier nuclei, electrons, positrons, and photons) is computed in the continuous slowing down approximation, diffusion approximation, or catastrophic approximation by adopting a matching procedure for the various transport regimes. A choice of the proper regime depends on the nature of the dominant loss process modelled as continuous or catastrophic. Results. The CR ionisation rate is determined by CR protons and their secondary electrons below ≈ 130 g cm-2 and by electron-positron pairs created by photon decay above ≈ 600 g cm-2. We show that a proper description of the particle transport is essential to compute the ionisation rate in the latter case, since the electron and positron differential fluxes depend sensitively on the fluxes of both protons and photons. Conclusions. Our results show that the CR ionisation rate in high-density environments, such as the inner parts of collapsing molecular clouds or the mid-plane of circumstellar discs, is higher than previously assumed. It does not decline exponentially with increasing column density, but follows a more complex behaviour because of the interplay of the different processes governing the generation and propagation of secondary particles. © ESO 2018.
引用
收藏
相关论文
共 50 条
  • [1] Cosmic-ray ionisation in circumstellar discs
    Padovani, Marco
    Ivlev, Alexei V.
    Galli, Daniele
    Caselli, Paola
    [J]. ASTRONOMY & ASTROPHYSICS, 2018, 614
  • [2] Cosmic-ray ionisation in collapsing clouds
    [J]. Hennebelle, P. (padovani@lra.ens.fr), 1600, EDP Sciences (560):
  • [3] Cosmic-ray ionisation in collapsing clouds
    Padovani, M.
    Hennebelle, P.
    Galli, D.
    [J]. ASTRONOMY & ASTROPHYSICS, 2013, 560
  • [4] Impact of Cosmic-Ray Feedback on Accretion and Chemistry in Circumstellar Disks
    Offner, Stella S. R.
    Gaches, Brandt A. L.
    Holdship, Jonathan R.
    [J]. ASTROPHYSICAL JOURNAL, 2019, 883 (02):
  • [5] Parsec-scale cosmic-ray ionisation rate in Orion
    Socci, A.
    Sabatini, G.
    Padovani, M.
    Hacar, A.
    Bovino, S.
    [J]. ASTRONOMY & ASTROPHYSICS, 2024, 687
  • [6] The cosmic-ray staircase: the outcome of the cosmic-ray acoustic instability
    Tsung, Tsun Hin Navin
    Oh, S. Peng
    Jiang, Yan-Fei
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2022, 513 (03) : 4464 - 4493
  • [7] INTERACTION BETWEEN COSMIC-RAY ELECTRONS AND COSMIC-RAY PROTONS
    MELROSE, DB
    [J]. ASTROPHYSICAL JOURNAL, 1970, 161 (02): : 457 - &
  • [8] The cosmic-ray ionisation rate in the pre-stellar core L1544☆
    Redaelli, E.
    Sipilae, O.
    Padovani, M.
    Caselli, P.
    Galli, D.
    Ivlev, A., V
    [J]. ASTRONOMY & ASTROPHYSICS, 2021, 656
  • [9] ISOTOPIC COMPOSITION OF GALACTIC COSMIC-RAY BERYLLIUM AND COSMIC-RAY AGE
    GARCIAMUNOZ, M
    MASON, GM
    SIMPSON, JA
    [J]. BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1977, 22 (04): : 567 - 567
  • [10] Cosmic-ray Clocks
    Vladimir S. Ptuskin
    Aimé Soutoul
    [J]. Space Science Reviews, 1998, 86 : 225 - 238